The proposed power converter system includes: a main body component having a case, an input terminal, a power converter circuit electrically connected to the input terminal, a plurality of resistors electrically connected to the power converter circuit, and a first connecting port electrically connected to each of the resistors, and a plurality of adaptor units each having an adaptor. Each of the adaptors is employed to let the power converter circuit generate a specific output voltage value and includes: an input connecting port coupled to the first connecting port to let each of the resistors become one of the grounded state, the open-circuited state, and the coupled to the output voltage state, and an output port coupled to the input connecting port for outputting the output voltage.
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26. A power converter system for converting an input voltage to an output voltage, comprising:
a main body component, comprising:
a power converter circuit for generating said output voltage, comprising:
an output voltage terminal; and
a common ground terminal;
a resistor having one end electrically connected to said power converter circuit; and
a first connecting port electrically connected to the other end of said resistor; and
a plural adaptor unit, comprising:
an input connecting port having one end electrically connected to said first connecting port and having the other end with plural connectors,
wherein each of said connectors is one of an output voltage connector connected to said first connecting port through said one end thereof so as to be electrically connected to said output voltage terminal for outputting said output voltage, a common ground connector connected to said first connecting port through said one end thereof so as to be electrically connected to said common ground terminal, an interconnecting connector, all of which are connected to one of said output voltage connector and said common ground connector, and an open-circuit connector for forming an open circuit thereof, the other end of said resistor is electrically connected to said input connecting port through said first connecting port to be electrically connected to one of said connectors so as to be in one of an electrically conductive state and an electrically unconductive state respectively, and said output voltage is formed accordingly.
1. A power converter system for converting an input voltage to an out out voltage, comprising:
a main body component, comprising:
a case;
an input terminal for receiving said input voltage;
a power converter circuit electrically connected to said input terminal for generating said output voltage and providing one of an over-current protection, an over-voltage protection, an over-current and over-voltage protection, and no over-current and over-voltage protection, comprising:
an output voltage terminal; and
a common ground terminal;
a plurality of resistors having one end of each said resistor electrically connected to said power converter circuit; and
a first connecting port electrically connected to said output voltage terminal and said common ground terminal of said power converter circuit, and the other end of each said resistor; and
a first set of plurality of adaptor units, wherein each of said adaptor unit is employed for generating one of a plurality of various voltage values of said output voltage by said power converter circuit, each said adaptor unit comprising:
an input connecting port having one end electrically connected to said first connecting port and having the other end with a plurality of connectors,
wherein each of said connectors is one of an output voltage connector connected to said first connecting port through said one end thereof so as to be electrically connected to said output voltage terminal for outputting said output voltage, a common ground connector connected to said first connecting port through said one end thereof so as to be electrically connected to said common ground terminal, an interconnecting connector, all of which are connected to one of said output voltage connector and said common ground connector, and an open-circuit connector for forming an open circuit thereof; and
an output connecting port electrically connected to said output voltage connector and said common ground connector for outputting said output voltage,
wherein the other end of each said resistor is connected to said input connecting port of each said adaptor unit through said first connecting port to be electrically connected to one of said interconnecting connector and said open-circuit connector so as to be in one of an electrically conductive state and an electrically unconductive state respectively, and said output voltage is formed accordingly.
2. The system according to
4. The system according to
a second connecting port having one end electrically connected to said first connecting port;
a connecting cord having one end integrally formed with and electrically connected to the other end of said second connecting port; and
a third connecting port having one end integrally formed with and electrically connected to the other end of said connecting cord and having the other end electrically connected to said one end of said input connecting port of said adaptor.
5. The system according to
a connecting cord having one end integrally formed with and electrically connected to said first connecting port; and
a second connecting port having one end integrally formed with and electrically connected to the other end of said connecting cord and having the other end electrically connected to said one end of said input connecting port of said adaptor.
6. The system according to
a second connecting port having one end electrically connected to said first connecting port; and
a connecting cord having one end integrally formed with and electrically connected to the other end of said second connecting port and having the other end integrally formed with and electrically connected to said one end of said input connecting port of said adaptor.
7. The system according to
8. The system according to
9. The system according to
a voltage-divider circuit;
an over-current protection circuit; and
an over-voltage protection circuit.
10. The system according to
11. The system according to
12. The system according to
14. The system according to
15. The system according to
16. The system according to
17. The system according to
18. The system according to
19. The system according to
20. The system according to
21. The system according to
22. The system according to
23. The system according to
24. The system according to
25. The system according to
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The present invention relates to a power converter system. More specifically, this invention relates to a power converter system having a plurality of adaptor units for generating multiple output voltage values.
Generally speaking, any electronic device (including electronic equipment) must be powered by an external power source except for employing the electronic cells. Thus, how to convert the voltages offered by the different external power sources (AC or DC) into the certain form and within the proper range so as to be properly employed by the electronic device (including electronic equipment) is an important issue.
The power converter is just such a device for the above-mentioned requirements. Usually, the power converters can be further divided into the AC-DC converters, the DC-DC converters, etc. according to the voltage converting types of the converters. The users can make the proper choices of different converters to cope with the different output voltage requirements.
In general, one of the purposes of the power converter is to convert the given voltage, which does not meet the input voltage requirements of the electronic device (including electronic equipment), into the proper form and value of the desired input voltage such that the output voltage of the power converter could be employed by the electronic device (including electronic equipment) properly. Base on the considerations of saving the space and lowering the costs, there are power converters suitable for applying to various electronic devices (including electronic equipments) having different input voltage requirements proposed in the prior art. For example, there are power converters for providing different output voltage values through employing the switching device, in which the different output voltage values are offered through changing the position of the switching devices. Please refer to
To improve the aforementioned drawbacks, a power converter is proposed in P. Jakubowski (U.S. Pat. No. 5,347,211), which includes a plurality of keys each having an electronic element inside for inserting into the keyway of the proposed power converter to be electrically connected to the power converter such that the output voltage value is decided by the specific value of the electronic element (which is one of a resistor, a capacitor, and an inductor). When the various keys each having a different electronic elements are selectively inserted, a set of the different output voltage values are generated accordingly.
But the aforementioned power converter as proposed in the '211 Patent still has the following drawbacks:
1. As for the key having an electronic element inside, the heat-dissipating space inside the key is more limited than that of the power converter. While the key is employed for a relatively longer time period, either the key is damaged or the life-span of the key is shortened due to that the heat is generated inside the key by the electronic element and the heat-dissipating condition inside the key is relatively poor. When the key is broken (short-circuited or open-circuited), the output voltage value of the power converter is abnormal, and the electronic device (including electronic equipment), which employs the output voltage of the power converter, would be damaged.
2. To each required output voltage, the corresponding key must have a different electronic element. If N different output voltages are required, N extra electronic elements are needed such that the design complexity of the electronic circuit and the number of electronic elements employed are increased, and which should be further simplified.
3. In the prior art, no over-current and over-voltage protections are offered simultaneously to the output voltage. When the output voltage value is abnormal, the electronic device (including electronic equipment), which employs the output voltage, would be damaged. If an over-current protection and an over-voltage protection are offered at the same time, the electronic device (including electronic equipment), which employs the output voltage, would be provided with an over-current protection and an over-voltage protection simultaneously for avoiding the damage when the power converter is damaged and the output current and output voltage of which are abnormal.
Keeping the drawbacks of the prior arts in mind, and employing experiments and research full-heartily and persistently, the applicant finally conceived the power converter system having a plurality of adaptor units for generating multiple output voltage values.
It is therefore an object of the present invention to propose a power converter system, which employs an adaptor unit being inserted externally for determining an output voltage.
It is therefore another object of the present invention to propose a power converter system such that each of the plurality of resistors, which are connected to the power converter circuit of the proposed power converter system, is in one of an open-circuited state, a grounded state, and a connected to the output voltage state through a selective connection of the adaptor unit, and which means that the output voltage is controlled by whether or not each of the resistors is electrically conductive and a voltage-drop is generated thereon.
According to the aspect of the present invention, the power converter system for converting an input voltage to an output voltage includes: a main body component including: a case, an input terminal for receiving the input voltage, a power converter circuit electrically connected to the input terminal for generating the output voltage and providing one of an over-current protection, an over-voltage protection, an over-current and over-voltage protection, and no over-current and over-voltage protection having: a output voltage terminal, and a common ground terminal, a plurality of resistors having one end of each resistor electrically connected to the power converter circuit, and a first connecting port electrically connected to the output voltage terminal and the common ground terminal of the power converter circuit, and the other end of each resistor, and a first set of plurality of adaptor units, wherein each of the adaptor unit is employed for generating one of a plurality of various voltage values of the output voltage by the power converter circuit, each adaptor unit including: an input connecting port having one end electrically connected to the first connecting port and having the other end with a plurality of connectors, wherein each of the connectors is one of an output voltage connector connected to the first connecting port through one end thereof so as to be electrically connected to the output voltage terminal for outputting the output voltage, a common ground connector connected to the first connecting port through one end thereof so as to be electrically connected to the common ground terminal, an interconnecting connector, all of which are connected to one of the output voltage connector and the common ground connector, and an open-circuit connector for forming an open circuit thereof, and an output connecting port electrically connected to the output voltage connector and the common ground connector for outputting the output voltage, wherein the other end of each resistor is connected to the input connecting port of each adaptor unit through the first connecting port to be electrically connected to one of the interconnecting connector and the open-circuit connector so as to be in one of an electrically conductive state and an electrically unconductive state respectively, and the output voltage is formed accordingly.
Preferably, the output connecting port of each adaptor unit further includes a foolproof device and is electrically connected to an electronic device (including electronic equipment).
Preferably, each of the adaptor units is an adaptor.
Preferably, each of the adaptor units further includes an output power cord, and the cord includes: a second connecting port having one end electrically connected to the first connecting port, a connecting cord having one end integrally formed with and electrically connected to the other end of the second connecting port, and a third connecting port having one end integrally formed with and electrically connected to the other end of the connecting cord and having the other end electrically connected to one end of the input connecting port of the adaptor.
Preferably, each of the adaptor units further includes an output power cord, and the cord includes: a connecting cord having one end integrally formed with and electrically connected to the first connecting port, and a second connecting port having one end integrally formed with and electrically connected to the other end of the connecting cord and having the other end electrically connected to one end of the input connecting port of the adaptor.
Preferably, each of the adaptor units further includes an output power cord, and the cord includes: a second connecting port having one end electrically connected to the first connecting port, and a connecting cord having one end integrally formed with and electrically connected to the other end of the second connecting port and having the other end integrally formed with and electrically connected to one end of the input connecting port of the adaptor.
Preferably, the power converter circuit is employed to generate a pre-determined output voltage value and provide one of a pre-determined over-current protection value, a pre-determined over-voltage protection value, a set of pre-determined over-current protection and over-voltage protection values, and no over-current protection and over-voltage protection values in one of a state of all the adaptor units being separated from the main body component and a state of all the resistors being electrically unconductive.
Preferably, each of the resistors is electrically connected to one of the output voltage connector, the common ground connector, and the open-circuit connector through the first connecting port and the input connecting port of each adaptor unit selectively so as to form a connecting circuit in each adaptor unit according to design requirements, and each of N resistors is selectively involved in an operation of the power converter circuit so as to form two to the power of N configurations of the connecting circuits of the adaptor units, and two to the power of N output voltage values of the output voltage are generated accordingly.
Preferably, the power converter circuit further includes: a voltage-divider circuit, an over-current protection circuit, and an over-voltage protection circuit.
Preferably, the output voltage, and an over-current protection and an over-voltage protection of the output voltage are generated by the voltage-divider circuit, the over-current protection circuit, and the over-voltage protection circuit according to whether each resistor is in one of the electrically conductive state and the electrically unconductive state when the first connecting port and the input connecting port of the adaptor units are electrically connected and each resistor is selectively involved in the operation of the power converter circuit.
Preferably, the voltage-divider circuit, the over-current protection circuit, and the over-voltage protection circuit are electrically connected to one end of each resistor, and whether each resistor is in one of the electrically conductive state and the electrically unconductive state is determined by the connecting circuit in each adaptor unit.
Preferably, the input voltage is provided by one of an AC power source and a DC power source.
Preferably, the output voltage is a DC output voltage.
Preferably, the proposed power converter system is a single input converter when only one of the AC power source and the DC power source is received by the input terminal.
Preferably, the proposed power converter system is a dual input converter when the input terminal has an AC power input and a DC power input ports for receiving the AC power source and the DC power source respectively.
Preferably, the power converter circuit further includes an AC/DC converter circuit and a DC/DC converter circuit.
Preferably, the DC/DC converter circuit is a DC/DC buck converter circuit for converting a DC input voltage into a relatively lower DC output voltage.
Preferably, the input voltage is an AC input voltage to be converted into a relatively higher DC output voltage by the AC/DC converter circuit.
Preferably, the DC/DC converter circuit is a DC/DC boost converter circuit for converting a DC input voltage into the relatively higher DC output voltage.
Preferably, the dual input converter further includes a buck converter circuit.
Preferably, the buck converter circuit is employed to convert the relatively higher DC output voltage into a relatively lower DC output voltage.
Preferably, the AC/DC converter circuit, the DC/DC converter circuit, and the buck converter circuit respectively have a feedback circuit so as to modulate the output voltage.
Preferably, the buck converter circuit further includes a power converter subsystem, and the power converter subsystem is employed with a second set of plurality of adaptor units to convert the relatively higher DC output voltage into the relatively lower DC output voltage having a plurality of different voltage values.
Preferably, the power converter system and the power converter subsystem have different sets of design parameters including the number of the adaptor units, the output voltage with various voltage values, the relatively lower DC output voltage with different voltage values, number of resistors, and resistance values, and the main body component of the power converter system and a main body component of the power converter subsystem can be both installed in the case.
Preferably, the power converter circuit further includes a converter shut-down circuit, the converter shut-down circuit is employed when the power converter circuit is in one of an over-current status and an over-voltage status, and the power converter circuit has an over-current protection circuit and an over-voltage protection circuit for receiving an over-current/over-voltage control signal and outputting a shut-down control signal respectively so as to shut-down the power converter circuit.
According to another aspect of the present invention, the power converter system for converting an input voltage to an output voltage includes: a main body component including: a power converter circuit for generating the output voltage, a resistor having one end electrically connected to the power converter circuit, and a first connecting port electrically connected to the other end of the resistor, and a plural adaptor unit including: an input connecting port having one end electrically connected to the first connecting port and having the other end with plural connectors, wherein the other end of the resistor is connected to the input connecting port through the first connecting port to be electrically connected to one of the connectors so as to be in one of an electrically conductive state and an electrically unconductive state respectively, and the output voltage is formed accordingly.
The present invention may best be understood through the following descriptions with reference to the accompanying drawings, in which:
Due to the drawbacks of the converters employing the switching devices to change the output voltages and the converters employing the plurality of keys each having an electronic element inside to determine the output voltages respectively in the prior art, the first preferred embodiment of the proposed power converter system 10 of the present invention as shown in
Please refer to
When the user wants to change the output voltage, it is only necessary to choose a proper adaptor 13, the input connecting port 131 of the chosen adaptor 13 is electrically connected to the first connecting port 113 through the output power cord 122, and the output voltage can be changed easily. When the output power cord 122 is not employed, the two connecting ports 113 and 131 can also be connected directly through changing the design and can be applicable to an electronic device (including electronic equipment). The two ends 1221 and 1223 of the output power cord 122 both can be taken apart from the connecting positions as shown in
Please refer to
The connecting circuit in each adaptor 13 could be employed to decide the output voltage outputting from the output connecting port 132. Please refer to
Thus, the circuits 1141, 1142, and 1143 of the power converter 114 would be affected by whether each of the plurality of resistors (in the component 1144) is electrically conductive or not. That is to say, the statuses regarding all of the plurality of resistors are electrically unconductive, partial of the plurality of resistors are electrically conductive, or all of the plurality of resistors are electrically conductive are closely related to the operational statuses of the power converter circuit 114. Furthermore, which means that when each of the plurality of adaptors 13 is electrically connected to the power converter circuit 114, the electrically conductive statuses of the power converter circuit 114 are controlled and the output values/operation values of the circuits 1141, 1142, and 1143 are controlled through a specific connecting circuit since whether the other end of each of the plurality of resistors is electrically unconductive to form an open-circuit or electrically conductive and all of which are electrically connected to one of a common ground connector g′ and an output voltage connector Vo′ so as to form the different output voltages and the corresponding over-current and over-voltage protections. Thus, the variations of the output voltages are controlled by each of the plurality of adaptors.
As for the three resistors including in the preferred embodiment as shown in
Through the above-mentioned embodiment, one could tell that eight different output voltage values could be generated through the combinations of three resistors according to the design of the present invention. Which means that sixteen different output voltage values could be generated through the combinations of four resistors and two to the power of N different output voltage values could be generated through the combinations of N resistors. And, the requirements of the consumers regarding the output voltage values could be fully satisfied through proper redesign of the proposed power converter circuit. Thus, relatively the maximum number of combinations of the different output voltages could be generated by employing the minimum number of resistors according to the proposed power converter circuit of the present invention, and the purpose of lowering the costs could be achieved. On the contrary, a passive element is employed along with the electronic circuit design for each output voltage value to achieve the purpose of generating multiple output voltages since the switches installed on the main body component or the keys each having a passive element (resistor/capacitor/inductor) inside inserted into the main body component are employed by the power converter systems to change the output voltages in the prior art. According to the prior art, for N output voltage values, at least N different passive elements are required in the power converter circuit to generate the plurality of different output voltage values, which is not efficient and is not cost-saving.
Furthermore, the adaptor 13 of the present invention could be inserted into the main body component 11 at any position and is flexibly designed according to the requirements of the users. As shown in
Except for the preferred embodiments mentioned above, for the user's convenience and to cooperate with the environmental limitations, the proposed power converter system of the present invention could have another preferred embodiment as shown in
Due to the users' requirements and the environmental limitations, the dual input power converter systems for receiving either an AC power source or a DC power source are also a common kind of the power converter systems. Please refer to
For avoiding the confusions of the users, the shapes of the plurality of adaptors 13 for determining the outputting voltages and the shapes of the input terminal of the electronic device (including electronic equipment) 20 could be further changed. Please refer to
When the proposed ideas of the present invention are applied to the dual input power converter system, which could be achieved by modifying the power converter circuit 114 of the main body component 11 only. Please refer to
When the input voltage is an AC input voltage and the AC/DC converter circuit 114a is employed to convert the AC input voltage into a DC output voltage, the DC output voltage is usually a relatively higher DC output voltage (see
Please refer to
Please refer to
In conclusion, the proposed power converter system 10 of the present invention includes a main body component 11 coupled to an output power cord 122 and an adaptor 13 to be electrically connected to the power input terminal of an electronic device (including electronic equipment) 20 to replace the conventional power converter system, in which the output voltage values are decided by the different positions of the switching device, so as to improve the drawbacks of that the improper voltages are outputted by mistake and the switching device is easy to be loosened. The advantages of the present invention are further analyzed as follows. Since the plurality of adaptors 13 of the proposed power converter 10 of the present invention are employed, in which each adaptor has a specific connecting circuit to cooperate with whether each of the plurality of resistors 1144 is electrically conductive or electrically un-conductive, the desired different output voltage values are decided accordingly. Due to that there is no active/passive element included in the adaptor 13 of the present invention, relatively the manufacturing processes are simpler, the total cost is lower, and the drawbacks of the plurality of keys each has a passive element inside, which are easy to be damaged due to that the heat is generated through the usage of the key and the heat-dissipating condition inside each key is relatively poor, are avoided. Furthermore, if one of the adaptors 13 is lost by the user accidentally, the lost adaptor 13 could be reacquired, there is no need to replace the whole power converter system 10, thus to overcome the drawbacks of replacing the whole power converter system 10 due to that the switching device 111 is broken. Due to the decrease of the total cost (including the design and the manufacturing costs etc.) of the adaptor 13, the competition capability of the proposed power converter system 10 in the market would be significantly improved. Furthermore, there is the foolproof device which will make the adaptor units 13 of the proposed power converter system 10 of the present invention and the input terminals of the electronic devices (including electronic equipments) have the foolproof and paired shapes to be correctly and electrically connected together. For example, the standard parts in the markets could be employed such that the output plugs having different output voltage values could be equipped with corresponding adaptors so as to decrease the risks that the user links the input voltage higher than required to the input terminal of the electronic device (including electronic equipment) so as to damage the electronic device (including electronic equipment) by mistake.
Furthermore, through the circuit design and using the component having the plurality of resistors 1144, the N different resistors could be employed to generate the relatively maximum combinations of the different output voltage values, which is two to the power of N different output voltage values. Thus, not even an electronic element is wasted. At the meantime, the proposed power converter system 10 of the present invention could be applied to the single input (AC or DC) and the dual input (AC/DC) power converter systems 10, there is no limitation regarding the input voltage type.
While the invention has been described in terms of what are presently considered to be the most practical and preferred embodiments, it is to be understood that the invention need not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims, which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures. Therefore, the above description and illustration should not be taken as limiting the scope of the present invention which is defined by the appended claims.
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